Electrocatalytic conversion of CO2 to produce solar fuels in electrolyte or electrolyte-less configurations of PEC cells.
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Summary
Under electrolyte-less conditions, the formation of >C2 products such as acetone and isopropanol is observed, but not in liquid-phase cell operations on the same electrodes, and the relative order of productivity in CO2 electrocatalytic reduction in the series of electrodes investigated is different between the two types of cells.
- Type
- article
- Published
- 2015-12-07
- Cited by
- 53
- References
- 44
- OpenAlex
- https://openalex.org/W1798083594
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:45230360
Keywords
Electrolyte, Electrode, Electrochemistry, Diffusion, Chemical engineering
References
- Electrocatalytic conversion of CO2 to liquid fuels using nanocarbon-based electrodes
- Electrolyte-less design of PEC cells for solar fuels: Prospects and open issues in the development of cells and related catalytic electrodes
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- Electrocatalytic conversion of CO2 on carbon nanotube-based electrodes for producing solar fuels
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- A review of catalysts for the electroreduction of carbon dioxide to produce low-carbon fuels.
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- The artificial leaf.
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- Heterogeneous nanocarbon materials for oxygen reduction reaction
- Status and perspectives of CO2 conversion into fuels and chemicals by catalytic, photocatalytic and electrocatalytic processes
- Conversion of formaldehyde to acetic acid. Formic acid as a stoichiometric carbon monoxide-substitute
- A gas-phase reactor powered by solar energy and ethanol for H2 production
- CO2‐based energy vectors for the storage of solar energy
- Nanocarbons for the development of advanced catalysts.
Cited by
- Electrolyte-less design of PEC cells for solar fuels: Prospects and open issues in the development of cells and related catalytic electrodes
- Solar Production of Fuels from Water and CO2: Perspectives and Opportunities for a Sustainable Use of Renewable Energy
- Turning Perspective in Photoelectrocatalytic Cells for Solar Fuels.
- Electrochemical membrane reactors for the utilisation of carbon dioxide
- Electrochemical behaviour of naked sub-nanometre sized copper clusters and effect of CO2
- A Photoelectrochemical cell for direct conversion of gaseous CO2 to self-growing graphenic carbon and hydrogenated carbon
- Analysis of the factors controlling performances of Au-modified TiO 2 nanotube array based photoanode in photo-electrocatalytic (PECa) cells
- Selective CO production in photoelectrochemical reduction of CO2 with a cobalt chlorin complex adsorbed on multiwalled carbon nanotubes in water
- Electrochemical CO2 Reduction to Fuels Using Pt/CNT Catalysts Synthesized in Supercritical Medium
- Mechanism of C–C bond formation in the electrocatalytic reduction of CO2 to acetic acid. A challenging reaction to use renewable energy with chemistry
- Semiconductor, molecular and hybrid systems for photoelectrochemical solar fuel production
- Engineering of photoanodes based on ordered TiO2-nanotube arrays in solar photo-electrocatalytic (PECa) cells
- A photoelectrochemical flow cell design for the efficient CO2 conversion to fuels
- Progress in inorganic cathode catalysts for electrochemical conversion of carbon dioxide into formate or formic acid
- Electrochemical reduction of CO2 on graphene supported transition metals - towards single atom catalysts.
- Nano-engineered Electrodes for the Generation of Solar Fuels: Benefits and Drawbacks of Adopting a Photo-electrocatalytic (peca) Approach
- Role of small Cu nanoparticles in the behaviour of nanocarbon-based electrodes for the electrocatalytic reduction of CO2
- Enhanced formation of >C1 Products in Electroreduction of CO2 by Adding a CO2 Adsorption Component to a Gas-Diffusion Layer-Type Catalytic Electrode.
- Role of CuO in the modification of the photocatalytic water splitting behavior of TiO2 nanotube thin films
- Efficient nanomaterials for harvesting clean fuels from electrochemical and photoelectrochemical CO2 reduction
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